Image-Based Method For Measuring And Classification Of Iron Ore Pellets Using Star-Convex Polygons
Artem Solomko, Oleg Kartashev, Andrey Golov, Mikhail Deulin, Vadim Valynkin, Vasily Kharin

TL;DR
This paper introduces an innovative image-based measurement and classification method for iron ore pellets using the StarDist algorithm, improving accuracy in complex, densely packed environments where traditional methods underperform.
Contribution
The study develops a novel approach employing StarDist for precise segmentation, measurement, and classification of iron ore pellets, addressing limitations of existing algorithms.
Findings
Enhanced accuracy in pellet size measurement.
Effective classification of quality and joint pellets.
Robust segmentation in dense environments.
Abstract
We would like to present a comprehensive study on the classification of iron ore pellets, aimed at identifying quality violations in the final product, alongside the development of an innovative imagebased measurement method utilizing the StarDist algorithm, which is primarily employed in the medical field. This initiative is motivated by the necessity to accurately identify and analyze objects within densely packed and unstable environments. The process involves segmenting these objects, determining their contours, classifying them, and measuring their physical dimensions. This is crucial because the size distribution and classification of pellets such as distinguishing between nice (quality) and joint (caused by the presence of moisture or indicating a process of production failure) types are among the most significant characteristics that define the quality of the final product.…
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Taxonomy
TopicsMineral Processing and Grinding · Mining and Gasification Technologies
